The present invention relates to an aircraft gas-turbine engine with a core engine surrounded by a bypass duct, with a radially outer engine cowling enclosing the bypass duct and being provided at its rear region with a thrust-reversing device which is moveable relative to the engine cowling, with at least one cooler element extending over at least part of the circumference being arranged in the intermediate area between the engine cowling and the thrust-reversing device.
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1. An aircraft gas-turbine engine comprising:
a core engine surrounded by a bypass duct,
a radially outer engine cowling enclosing the bypass duct,
a thrust-reversing device provided at a rear region of the engine cowling which is moveable relative to the engine cowling,
a cooler element extending over at least part of a circumference of the gas-turbine engine being axially positioned in a gap between a rearward edge of the engine cowling and an adjacent forward edge of the thrust-reversing device and radially positioned between the bypass flow duct and an outer surface of the engine cowling.
13. An aircraft gas-turbine engine comprising:
a core engine surrounded by a bypass duct,
a radially outer engine cowling enclosing the bypass duct,
a thrust-reversing device provided at a rear region of the engine cowling which is moveable relative to the engine cowling,
a cooler element extending over at least part of a circumference of the gas-turbine engine being arranged in an intermediate area between the engine cowling and the thrust-reversing device,
the cooler element being located at an axial point between a distal end of the engine cowling and the thrust-reversing device and at a radial position between an inner surface and an outer surface of the engine cowling.
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DE102011101342,7 filed May 12, 2011, the entirety of which is incorporated by reference herein.
This invention relates to an aircraft gas-turbine engine with a core engine surrounded by a bypass duct. The bypass duct is enclosed by a radially outer engine cowling, at the rear region of which a thrust-reversing device is provided which is moveable relative to the engine cowling.
It is known from the state of the art to attach heat exchangers either to the core engine or to the casing of the fan or in the region of struts in the bypass duct. It is known here to use either matrix coolers with a plurality of flow ducts or surface coolers with an enlarged surface.
The designs known from the state of the art require in each case an adaptation of the dimensions of the casing, with the latter in many cases having to be axially extended on account of the oil coolers. This has the disadvantageous result of higher weight and also hinders access to radially inward assemblies. The use of coolers inside the casing of the fan or in the region of struts or stator vanes inside the bypass duct impairs the design of thrust reverser cascades and proves unfavourable for that reason too.
A further disadvantage resulting from the designs known from the state of the art is that modern gas-turbine engines with a high bypass flow ratio require larger oil coolers and heat exchangers, which in the known designs can only be installed at great expense or not at all, since the installation space required is not available or is available only to a limited extent.
The known designs are thus characterized by high weight, increased size and design-related drawbacks.
A broad aspect of the present invention is to provide an aircraft gas-turbine engine of the type specified at the beginning which, while being simply designed and easily and cost-effectively producible, can effectively be provided with a heat exchanger or oil cooler, respectively, and/or a pre-cooler (air cooled air cooler).
It is a particular object of the present invention to provide solution to the above problems by a combination of the features described herein Further advantageous embodiments of the present invention will become apparent from the present description.
It is thus provided in accordance with the invention that in an intermediate area between the inflow-side engine cowling and the thrust-reversing device at least one cooler element (heat exchanger, oil cooler) is arranged extending over at least part of the circumference.
The design in accordance with the present invention is characterized by a variety of considerable advantages. Initially it is possible to design the cooler element substantially annular, so that it can have a large volume and a large heat transfer capacity. This distinguishes the present invention considerably from solutions known from the state of the art, which provide in each case singular cooler elements.
A further substantial advantage is that the cooler element in accordance with the present invention is arranged at an intermediate area between the thrust-reversing device and the front engine cowling. In the flight state, in which the thrust-reversing device is not activated, the recurring problem is a radially outward residual flow from the bypass duct between the engine cowling and the thrust-reversing device. In accordance with the invention, this flow can thus be used for heat exchange, since the cooler element in accordance with the invention is arranged in this region of exiting airflow. It is possible by suitable measures to achieve a very effective cooling in the flight state, where the air quantity discharged from the bypass duct can be precisely determined by the design of the gap between the engine cowling and the thrust-reversing device. The solution in accordance with the invention is thus distinguished by a high efficiency which is very advantageous particularly in modern engine designs having a high cooling requirement. Engine designs of this type have for example a fan driven by a gearbox or additional electrical units.
It is particularly favourable in accordance with the invention when the cooler element is arranged at the outflow region of the engine cowling. This results in an effective flow through the cooler element even when the thrust-reversing device is activated. It can also be advantageous to provide the cooler element with at least one air-guiding element that passes the airflow effectively through the cooler element or over its surface even when the thrust-reversing device is activated.
With the arrangement of the cooler element in accordance with the invention at a radially very far outward position in the region of the engine cowling, it is possible to provide the latter with a smaller cross-section, allowing the size to be reduced overall without impairing the heat exchange.
It is furthermore favourable that the positioning of the cooler element in accordance with the invention is optimized in respect of the pressures occurring. This means that at the radially outer surface of the engine cowling (nacelle) a minimum static pressure results, while in this region the pressure inside the bypass duct is high, in particular also due to the nozzle-like design of the bypass duct provided downstream.
The arrangement of the cooler element in accordance with the invention and its integration in the area of thrust reverser cascades furthermore leads to the advantageous effect that flow-guiding elements of the cascades can be used as guide ducts and sealing elements for the cooler element when the thrust-reversing device is in its deactivated position.
A further advantage results from the cooler element being readily accessible for maintenance work when the thrust-reversing device is activated.
It is thus possible in accordance with the invention to provide very large cooler elements with a high efficiency, which are particularly suitable especially for gas-turbine engines with a fan driven by a gearbox and/or with additional electrical units. In accordance with the invention, the result is a complete integration of the cooler element into the cascade structure of the thrust-reversing device. Due to the embodiment in accordance with the invention, other partial areas of the gas-turbine engine which were previously occupied by cooler elements (heat exchangers, oil coolers etc.) are freed up for other design tasks.
The present invention is described in the following in light of the accompanying drawing, showing exemplary embodiments. In the drawing,
In the following description, identical parts are provided with the same reference numerals in the various exemplary embodiments. Furthermore, the terms cooler element, heat exchanger and oil cooler are regarded as equivalent.
The gas-turbine engine 10 in accordance with
The intermediate-pressure compressor 13 and the high-pressure compressor 14 each include several stages, of which each has an arrangement extending in the circumferential direction of fixed and stationary guide vanes 20, generally referred to as stator vanes and projecting radially inwards from the engine casing 21 in an annular flow duct through the compressors 13, 14. The compressors furthermore have an arrangement of compressor rotor blades 22 which project radially outwards from a rotatable drum or disk 26 linked to hubs 27 of the high-pressure turbine 16 or the intermediate-pressure turbine 17, respectively.
The turbine sections 16, 17, 18 have similar stages, including an arrangement of fixed stator vanes 23 projecting radially inwards from the casing 21 into the annular flow duct through the turbines 16, 17, 18, and a subsequent arrangement of turbine blades 24 projecting outwards from a rotatable hub 27. The compressor drum or compressor disk 26 and the blades 22 arranged thereon, as well as the turbine rotor hub 27 and the turbine rotor blades 24 arranged thereon rotate about the engine axis 1 during operation.
Reference numeral 28 designates an exhaust cone.
The cooler elements 38, 39 are arranged in a gap 40 through which the heat exchanger inlet flow flows out as heat exchanger outlet flow 41 (
The top illustrations in
List of Reference Numerals
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Jun 18 2012 | TODOROVIC, PREDRAG | Rolls-Royce Deutschland Ltd & Co KG | ASSIGNMENT OF ASSIGNORS INTEREST SEE DOCUMENT FOR DETAILS | 028411 | /0955 |
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